notebook-analysis
Shared-kernel Jupyter notebook workflow for data analysis and exploration.
Install with Codex or Claude Copy this prompt, paste it into Codex, Claude, or another assistant, and let it review the skill page and install it for you.
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Shared-kernel Jupyter notebook workflow for data analysis and exploration.
Install with Codex or Claude Copy this prompt, paste it into Codex, Claude, or another assistant, and let it review the skill page and install it for you.
Based on SOC occupation classification
| name | notebook-analysis |
| description | Shared-kernel Jupyter notebook workflow for data analysis and exploration. |
Use this skill for data analysis or exploratory computation in an Runcell Science workspace.
Prefer .ipynb notebooks for analysis. Do not create throwaway analysis scripts when a notebook can hold the work and outputs.
Expected flow:
node "$OPEN_SCIENCE_NBCLI" cells --notebook <path>
id values stable.id values.node "$OPEN_SCIENCE_NBCLI" exec-cell --notebook <path> --cell <cell-id>
node "$OPEN_SCIENCE_NBCLI" read-cell --notebook <path> --cell <cell-id>
node "$OPEN_SCIENCE_NBCLI" exec-code --notebook <path> "<code>"
node "$OPEN_SCIENCE_NBCLI" status
The kernel is shared with the user's notebook panel. Variables you define stay live for the user, and variables they define are live for you. Do not restart the kernel unless asked.
This requires OPEN_SCIENCE_NBCLI and OPEN_SCIENCE_API_URL. They are present inside the Runcell Science app. If either is absent, say so and fall back to normal tools.